A Nanomechanical Atomic Force Qubit
Silicon nanomechanical resonators display ultra-long lifetimes at cryogenic temperatures and microwave frequencies. Achieving quantum control of single-phonons in these devices has so far relied on nonlinearities enabled by coupling to ancillary qubits. In this work, we propose using atomic forces t...
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Zusammenfassung: | Silicon nanomechanical resonators display ultra-long lifetimes at cryogenic
temperatures and microwave frequencies. Achieving quantum control of
single-phonons in these devices has so far relied on nonlinearities enabled by
coupling to ancillary qubits. In this work, we propose using atomic forces to
realize a silicon nanomechanical qubit without coupling to an ancillary qubit.
The proposed qubit operates at 60 MHz with a single-phonon level anharmonicity
of 5 MHz. We present a circuit quantum acoustodynamics architecture where
electromechanical resonators enable dispersive state readout and multi-qubit
operations. The combination of strong anharmonicity, ultrahigh mechanical
quality factors, and small footprints achievable in this platform could enable
quantum-nonlinear phononics for quantum information processing and
transduction. |
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DOI: | 10.48550/arxiv.2407.15387 |